PO.MCB05.01 · 分子与细胞生物学

代谢酶作为BRCA2单倍剂量不足和基因组不稳定性的保护性调节因子

Metabolic enzymes as protective modulator of BRCA2 haploinsufficiency and genome instability

海报缩略图:代谢酶作为BRCA2单倍剂量不足和基因组不稳定性的保护性调节因子
编号 4682 展板 2 时间 4/21 09:00–12:00 区域 Section 21 主讲 Xiao Zi Huang, BS
分会场 Insights into Genomic Instability
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作者与单位 Authors & Affiliations

Xiao Zi Huang1, Tuan Zea Tan2, C. Pawan K. Patro2, Li Ren Kong3, Ashok R. Venkitaraman2

1NUS Centre for Cancer Research, Yong Loo Lin School of Medicine, National University of Singapore (NUS), Singapore, Singapore,2Cancer Science Institute of Singapore, Singapore, Singapore,3Lee Kong Chian School of Medicine, Nanyang Technological University, Singapore, Singapore

摘要 Abstract

中文摘要
BRCA2抑癌基因的种系突变使个体易患多种癌症。我们实验室先前发现,内源性活性代谢物选择性地将BRCA2降解至保护性阈值以下,并短暂诱导BRCA2单倍剂量不足。这种功能性不足促进基因组不稳定性并驱动癌症演化,在代谢应激与致癌之间建立了直接的机制联系。我的项目旨在揭示抵抗代谢应激并防止BRCA2耗竭的细胞机制。我假设特定的代谢酶通过解毒活性代谢物并维持BRCA2稳定性而作为保护性缓冲。为研究这一点,我采用了模拟两类不同BRCA2突变的同基因细胞——截短型(+/3036del4)和错义型(+/D2723H)突变。这些突变在蛋白表达、亚细胞定位和某些生化特性方面有所不同,使其成为研究不同BRCA2突变亚型如何影响细胞代谢需求的理想模型。通过双读数靶向代谢CRISPR-Cas9敲除筛选,我鉴定出对细胞存活和维持基因组稳定性至关重要的代谢基因。初步筛选揭示了亚型特异性依赖,截短型突变体对能量代谢的扰动表现出更高敏感性,而错义型突变体则依赖于与DNA损伤应答相关的代谢途径。对最强命中基因的聚焦分析鉴定出与能量平衡、活性氧积累和内质网稳态相关的不同代谢响应。正在进行的工作聚焦于对高优先级候选基因的机制验证,以阐明特定代谢途径如何在应激下保护BRCA2功能。这些发现揭示了突变特异性的代谢脆弱性,并为鉴定潜在的代谢干预措施以保护BRCA2突变携带者的基因组稳定性提供了基础。
查看英文原文 English abstract
Germline mutations in the BRCA2 tumor suppressor gene predispose individuals to various cancers. Our lab previously discovered that endogenous reactive metabolites selectively degrade BRCA2 below the protective threshold and transiently induced BRCA2 haploinsufficiency. This functional insufficiency promotes genome instability and drives cancer evolution, establishing a direct mechanistic link between metabolic stress and carcinogenesis. My project aims to uncover the cellular mechanisms that counteract metabolic stress and prevent BRCA2 depletion. I hypothesise that specific metabolic enzymes act as protective buffers by detoxifying reactive metabolites and maintaining BRCA2 stability. To investigate this, I employed isogenic cells modeling two distinct classes of BRCA2 mutations - truncating (+/3036del4) and missense (+/D2723H) mutations. These mutations differ in protein expression, subcellular localisation and some of the biochemical properties, making them ideal to examine how different subtypes of BRCA2 mutations influence cellular metabolic requirements.Using a dual-readout targeted metabolic CRISPR-Cas9 knockout screening, I identified metabolic genes essential for cell survival and maintenance of genome stability. The primary screen revealed subtype-specific dependencies, with truncating mutants showing heightened sensitivity to perturbations in energy metabolism, whereas missense mutants relied on DNA damage response-linked metabolic pathways. Focused analysis of the top hits identified distinct metabolic responses associated with energy balance, reactive oxygen species accumulation and ER homeostasis. Ongoing work focuses on mechanistic validation of high-priority candidate genes to elucidate how specific metabolic pathways safeguard BRCA2 function under stress. These findings reveal mutation-specific metabolic vulnerabilities and provide a foundation for identifying potential metabolic interventions to preserved genome stability in BRCA2 mutation carriers.
利益披露 Disclosure
X. Huang, None.. T. Tan, None.. C. Patro, None.. L. Kong, None. A. R. Venkitaraman, ARV is a member of the Scientific Advisory Board of Chugai Pharmaceuticals Ltd., Japan, and a Director of Chugai Pharmabody Research Ltd., Singapore g., Board of Directors, non-salaried role).

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